PTS fructose transporter subunit IIC forms the translocation channel and contains the specific substrate-binding site of the phosphoenolpyruvate-dependent sugar phosphotransferase system (PTS) that catalyzes the phosphorylation of incoming sugar substrates concomitant with their translocation across the cell membrane
PTS system, fructose subfamily, IIC component; This model represents the IIC component, or IIC ...
115-453
1.40e-113
PTS system, fructose subfamily, IIC component; This model represents the IIC component, or IIC region of a IIABC or IIBC polypeptide of a phosphotransferase system for carbohydrate transport. Members of this family belong to the fructose-specific subfamily of the broader family (pfam02378) of PTS IIC proteins. Members should be found as part of the same chain or in the same operon as fructose family IIA (TIGR00848) and IIB (TIGR00829) protein regions. A number of bacterial species have members in two different branches of this subfamily, suggesting some diversity in substrate specificity of its members.
Pssm-ID: 273617 Cd Length: 346 Bit Score: 338.24 E-value: 1.40e-113
PTS_IIB_fructose: subunit IIB of enzyme II (EII) of the fructose-specific phosphoenolpyruvate: ...
4-99
2.53e-43
PTS_IIB_fructose: subunit IIB of enzyme II (EII) of the fructose-specific phosphoenolpyruvate:carbohydrate phosphotransferase system (PTS). In this system, EII (also referred to as FruAB) is a fructose-specific permease made up of two proteins (FruA and FruB) each containing 3 domains. The FruA protein contains two tandem nonidentical IIB domains and a C-terminal IIC transmembrane domain. Both IIB domains of FruA are included in this alignment. The FruB protein (also referred to as diphosphoryl transfer protein) contains a IIA domain, a domain of unknown function, and an Hpr-like domain called FPr (fructose-inducible HPr). This familiy also includes the IIB domains of several fructose-like PTS permeases including the Frv permease encoded by the frvABXR operon, the Frw permease encoded by the frwACBD operon, the Frx permease encoded by the hrsA gene, and the Fry permease encoded by the fryABC (ypdDGH) operon. FruAB takes up exogenous fructose, releasing the 1-phosphate ester in to the cytoplasm in preparation for metabolism primarily via glycolysis. The IIB domain fold includes a central four-stranded parallel open twisted beta-sheet flanked by alpha-helices on both sides. The seven major PTS systems with this IIB fold include fructose, chitobiose/lichenan, ascorbate, lactose, galactitol, mannitol, and a sensory system with similarity to the bacterial bgl system.
Pssm-ID: 99911 [Multi-domain] Cd Length: 96 Bit Score: 147.63 E-value: 2.53e-43
PTS system, Lactose/Cellobiose specific IIB subunit; The bacterial phosphoenolpyruvate: sugar ...
5-96
1.57e-16
PTS system, Lactose/Cellobiose specific IIB subunit; The bacterial phosphoenolpyruvate: sugar phosphotransferase system (PTS) is a multi-protein system involved in the regulation of a variety of metabolic and transcriptional processes. The lactose/cellobiose-specific family are one of four structurally and functionally distinct group IIB PTS system cytoplasmic enzymes. The fold of IIB cellobiose shows similar structure to mammalian tyrosine phosphatases. This family also contains the fructose specific IIB subunit.
Pssm-ID: 396744 Cd Length: 92 Bit Score: 74.68 E-value: 1.57e-16
PTS system, fructose subfamily, IIC component; This model represents the IIC component, or IIC ...
115-453
1.40e-113
PTS system, fructose subfamily, IIC component; This model represents the IIC component, or IIC region of a IIABC or IIBC polypeptide of a phosphotransferase system for carbohydrate transport. Members of this family belong to the fructose-specific subfamily of the broader family (pfam02378) of PTS IIC proteins. Members should be found as part of the same chain or in the same operon as fructose family IIA (TIGR00848) and IIB (TIGR00829) protein regions. A number of bacterial species have members in two different branches of this subfamily, suggesting some diversity in substrate specificity of its members.
Pssm-ID: 273617 Cd Length: 346 Bit Score: 338.24 E-value: 1.40e-113
PTS_IIB_fructose: subunit IIB of enzyme II (EII) of the fructose-specific phosphoenolpyruvate: ...
4-99
2.53e-43
PTS_IIB_fructose: subunit IIB of enzyme II (EII) of the fructose-specific phosphoenolpyruvate:carbohydrate phosphotransferase system (PTS). In this system, EII (also referred to as FruAB) is a fructose-specific permease made up of two proteins (FruA and FruB) each containing 3 domains. The FruA protein contains two tandem nonidentical IIB domains and a C-terminal IIC transmembrane domain. Both IIB domains of FruA are included in this alignment. The FruB protein (also referred to as diphosphoryl transfer protein) contains a IIA domain, a domain of unknown function, and an Hpr-like domain called FPr (fructose-inducible HPr). This familiy also includes the IIB domains of several fructose-like PTS permeases including the Frv permease encoded by the frvABXR operon, the Frw permease encoded by the frwACBD operon, the Frx permease encoded by the hrsA gene, and the Fry permease encoded by the fryABC (ypdDGH) operon. FruAB takes up exogenous fructose, releasing the 1-phosphate ester in to the cytoplasm in preparation for metabolism primarily via glycolysis. The IIB domain fold includes a central four-stranded parallel open twisted beta-sheet flanked by alpha-helices on both sides. The seven major PTS systems with this IIB fold include fructose, chitobiose/lichenan, ascorbate, lactose, galactitol, mannitol, and a sensory system with similarity to the bacterial bgl system.
Pssm-ID: 99911 [Multi-domain] Cd Length: 96 Bit Score: 147.63 E-value: 2.53e-43
PTS system, fructose-specific, IIB component; Bacterial PTS transporters transport and ...
5-87
3.11e-31
PTS system, fructose-specific, IIB component; Bacterial PTS transporters transport and concomitantly phosphorylate their sugar substrates, and typically consist of multiple subunits or protein domains. The Fru family is a large and complex family which includes several sequenced fructose and mannitol-specific permeases as well as several PTS components of unknown specificities. The fructose components of this family phosphorylate fructose on the 1-position. The Fru family PTS systems typically have 3 domains, IIA, IIB and IIC, which may be found as 1 or more proteins. The fructose and mannitol transporters form separate phylogenetic clusters in this family. This family is specific for the IIB domain of the fructose PTS transporters. [Transport and binding proteins, Carbohydrates, organic alcohols, and acids, Signal transduction, PTS]
Pssm-ID: 129909 [Multi-domain] Cd Length: 85 Bit Score: 115.26 E-value: 3.11e-31
PTS system, Lactose/Cellobiose specific IIB subunit; The bacterial phosphoenolpyruvate: sugar ...
5-96
1.57e-16
PTS system, Lactose/Cellobiose specific IIB subunit; The bacterial phosphoenolpyruvate: sugar phosphotransferase system (PTS) is a multi-protein system involved in the regulation of a variety of metabolic and transcriptional processes. The lactose/cellobiose-specific family are one of four structurally and functionally distinct group IIB PTS system cytoplasmic enzymes. The fold of IIB cellobiose shows similar structure to mammalian tyrosine phosphatases. This family also contains the fructose specific IIB subunit.
Pssm-ID: 396744 Cd Length: 92 Bit Score: 74.68 E-value: 1.57e-16
PTS_IIB: subunit IIB of enzyme II (EII) is the central energy-coupling domain of the ...
5-97
1.92e-16
PTS_IIB: subunit IIB of enzyme II (EII) is the central energy-coupling domain of the phosphoenolpyruvate:carbohydrate phosphotransferase system (PTS). In the multienzyme PTS complex, EII is a carbohydrate-specific permease consisting of two cytoplasmic domains (IIA and IIB) and a transmembrane channel IIC domain. The IIB domain fold includes a central four-stranded parallel open twisted beta-sheet flanked by alpha-helices on both sides. The seven major PTS systems with this IIB fold include chitobiose/lichenan, ascorbate, lactose, galactitol, mannitol, fructose, and a sensory system with similarity to the bacterial bgl system. The PTS is found only in bacteria, where it catalyzes the transport and phosphorylation of numerous monosaccharides, disaccharides, polyols, amino sugars, and other sugar derivatives. The four proteins (domains) forming the PTS phosphorylation cascade (EI, HPr, EIIA, and EIIB), can phosphorylate or interact with numerous non-PTS proteins thereby regulating their activity.
Pssm-ID: 99904 Cd Length: 84 Bit Score: 74.21 E-value: 1.92e-16
Phosphotransferase system, EIIC; The bacterial phosphoenolpyruvate: sugar phosphotransferase ...
132-400
8.21e-13
Phosphotransferase system, EIIC; The bacterial phosphoenolpyruvate: sugar phosphotransferase system (PTS) is a multi-protein system involved in the regulation of a variety of metabolic and transcriptional processes. The sugar-specific permease of the PTS consists of three domains (IIA, IIB and IIC). The IIC domain catalyzes the transfer of a phosphoryl group from IIB to the sugar substrate.
Pssm-ID: 367061 Cd Length: 315 Bit Score: 68.91 E-value: 8.21e-13
Database: CDSEARCH/cdd Low complexity filter: no Composition Based Adjustment: yes E-value threshold: 0.01
References:
Wang J et al. (2023), "The conserved domain database in 2023", Nucleic Acids Res.51(D)384-8.
Lu S et al. (2020), "The conserved domain database in 2020", Nucleic Acids Res.48(D)265-8.
Marchler-Bauer A et al. (2017), "CDD/SPARCLE: functional classification of proteins via subfamily domain architectures.", Nucleic Acids Res.45(D)200-3.
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